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Dmitry_Shevchenko [17]
3 years ago
10

In one on the compounds that contains only oxygen and nitrogen, 3.50 g of nitrogen combines with 2.00 g of oxygen. In another, 0

.875 g of nitrogen combines with 1.00 g of oxygen. Show that these compounds obey the law of multiple proportions.
Chemistry
1 answer:
BigorU [14]3 years ago
4 0

Answer:

Explanation:

The law of multiple proportions states that if two elements X and Y combine together to form more than one compound, then the several masses of X which chemically combine with a fixed mass of Y is in simple ratio.T

FIRST CASE ;

  • Molar mass of Nitrogen gas = 28 g/mol
  • Number of moles of Nitrogen gas = Mass/molar mass = 3.50/28 = 0.125 moles
  • Number of moles of Oxygen gas = Mass/molar mass = 2.00/32 = 0.0625 moles
  • Hence the ratio of number of moles of N2 to O2 will be 0.1295 : 0.0625 or 2:1

  • Similarly for the SECOND CASE ;
  • Molar mass of Nitrogen gas = 28 g/mol
  • Number of moles of Nitrogen gas = Mass/molar mass = 0.875/28 = 0.03125 moles
  • Number of moles of Oxygen gas = Mass/molar mass = 1/32 = 0.03125 moles
  • Hence the ratio of number of moles of N2 to O2 will be 0.03125 : 0.03125 or 1:1
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Answer:

; The structures of both compounds are shown in the attached image.

Explanation:

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Compound W is an alkyl halide that undergoes an SN1 reaction with sodium iodide in the presence of acetone forming the corresponding iodine compound.

while compound X is a tertiary alkyl halide, it is sterically restricted to undergo SN2 reactions.

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4 years ago
if you react 100g of ammonium chloride with excess calcium oxide, what Is the theoretical yeild (in grams) of ammonia? when you
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Answer:

31.78 grams

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100g / (53.49g/mol) * 2/2  * 17g/mol= 31.78 grams

If the actual yield is 8.12g, the percent yield will be: 8.12g/31.78g * 100% =25.55%

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